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L

Data Science Specialist

LHH Reading


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    L

    Data Science Specialist

    LHH Reading
    Status Open
    Apply now

    Apply on the employer's website


    What we ask

    Education

    No minimum education required

    Job description

    Data Scientist – Bayesian Hierarchical Modelling (R / Python / AWS)

    Overview

    We are seeking a highly capable Data Scientist with strong experience in Bayesian hierarchical modelling and advanced statistical techniques to join a growing data and analytics capability. This role sits across data science, data engineering, and backend development, supporting the delivery of scalable models, robust data pipelines, and high-quality insight products.

    You will work with complex, high-volume datasets, applying statistical rigour to solve real business problems, while also contributing to the engineering layer that enables analytics at scale.


    Key Responsibilities

    • Design, build, and deploy Bayesian hierarchical models to support forecasting, inference, and decision-making
    • Develop and maintain data pipelines and ETL processes, ensuring reliable, clean, and well-structured datasets
    • Contribute to data “plumbing” and backend data services that support analytics and modelling workflows
    • Work with large and complex datasets using Python and R
    • Build and deploy scalable data solutions within AWS environments (e.g. S3, Glue, Lambda, Redshift, or equivalent services)
    • Develop dashboards and data visualisations to translate complex model outputs into clear, actionable insights for stakeholders
    • Support backend development where required, particularly around data APIs, pipelines, and integration layers
    • Collaborate with data engineers, analysts, and business stakeholders to define requirements and deliver end-to-end solutions
    • Ensure model performance, validation, monitoring, and continuous improvement
    • Contribute to best practices across data science, engineering, and cloud-based data architecture


    Key Skills & Experience

    Essential

    • Strong experience in Bayesian statistical modelling and hierarchical modelling techniques
    • Proficiency in Python and R for data science and modelling
    • Strong grounding in statistical modelling, probability, and inference methods
    • Experience building and maintaining ETL pipelines and data workflows
    • Experience with data engineering / data “plumbing” in cloud or distributed environments
    • Working knowledge of AWS services (e.g. S3, Glue, Lambda, Redshift, or similar)
    • Experience building dashboards using tools such as Power BI, Tableau, or similar
    • Strong ability to manipulate, clean, and structure large datasets
    • Ability to communicate complex analytical outputs in a clear and usable way

    Desirable

    • Exposure to backend development (APIs, services, or data layer engineering)
    • Experience with probabilistic programming tools such as Stan or PyMC
    • Experience operationalising data science models in production environments
    • Familiarity with modern data stack tooling and cloud-native architectures
    • Experience working in Agile delivery teams
    • Exposure to real-time or large-scale data systems


    Soft Skills

    • Strong analytical and problem-solving capability
    • Comfortable working across both engineering and analytical domains
    • Strong stakeholder communication skills
    • Ability to work independently and take ownership of delivery
    • Commercial awareness and ability to translate data into business value


    What This Role Offers

    • Opportunity to work across full-stack data science and data engineering
    • Exposure to advanced Bayesian modelling in a production environment
    • Hands-on work with cloud infrastructure (AWS) and modern data pipelines
    • Opportunity to shape how data is engineered, modelled, and consumed across the business
    • High-impact role where statistical insight directly influences decision-making

    About the employer

    LHH
    Apply now

    Apply on the employer's website

    Apply now

    Apply on the employer's website


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